基于模糊三维区域生长法的胸椎CTA主动脉瘤自动提取

T. Tokuyasu, T. Shuto, K. Yufu, S. Kanao, A. Marui, M. Komeda
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引用次数: 0

摘要

计算机辅助诊断(CAD)系统帮助医务人员对病人的病情进行诊断,已在医学的各个领域得到应用。在心血管外科手术中,放射科医师需要手工构建患者器官的三维体积模型,并将这些信息提供给心血管外科医生,因此临床现场对构建患者三维体积模型的图像处理自动化技术提出了很高的要求。三维体积模型不仅可以用于诊断患者的病情,还可以在手术前制定手术计划。在对心血管疾病患者使用CAD系统的案例中,使用计算机断层血管造影(CTA)作为源数据,清晰地显示图像上由于造影剂导致的血流区域。然而,CTA不能提供足够的诊断信息,因为即使使用最新的CAD系统也不能正确区分动脉瘤和主动脉壁组织的区域。然后,本研究提出了基于模糊的区域增长方法,使计算机具有读取射线图的能力。我们关注的是有经验的医生阅读x线片的技能,因为他们知道CTA图像上动脉瘤和主动脉壁组织的分界线。因此,模糊推理被用来表达医生读x线图的技能,并作为增长标准。本文将该方法应用于一个患者的CTA数据,并对其结果进行了展示和讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic extraction of aortic aneurysm from thoracic CTA based on Fuzzy-based 3-D region growing method
Computer-Aided Diagnosis (CAD) system that helps medical staffs to diagnose patient's disease conditions has been used in a variety fields of medicine. For cardiovascular surgery, radiologists manually construct 3-D volume model of patient organ and provide this information to cardiovascular surgeons, therefore automation technique for image processing of building patient 3-D volume model is highly requested from clinical site. The 3-D volume model is used in not only diagnosing patient disease condition, but also making a surgical plan before an operation. In the case of using CAD system for a cardiovascular disease patient, computed tomography angiography (CTA) has been used as the source data that clearly indicates the region of blood flow on the image due to contrast agent. However, sufficient information for the diagnosis is not obtained from CTA, because the regions of aneurysm and aortic wall tissue can not distinguished correctly even using the latest CAD system. Then, this study proposes Fuzzy-based region growing method that enables a computer to have the ability of reading radiogram. We focused on the skill of reading radiogram of experienced doctors, because they know the boundary line between aneurysm and aortic wall tissue on CTA image. Hence, Fuzzy inference has been employed to express doctor's skill of reading radiogram and used as the growing criteria. The proposed method is applied to one patient CTA data and its result is shown and discussed in this paper.
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